Building hybrid knowledge representations from text

Josef Meyer, R. Dale
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引用次数: 6

Abstract

A significant obstacle to the development of intelligent natural language processing systems is the lack of rich knowledge bases containing representations of world knowledge. For experimental systems it is common practice to construct small knowledge bases by hand; however, this approach does not scale well to large systems. An alternative is to attempt to extract the desired information from existing knowledge sources intended for human consumption; however, attempts to construct broad-coverage knowledge bases using in-depth analysis have met with limited success. In this paper we present some preliminary work on an alternative approach that involves using shallow processing techniques to build a hybrid knowledge representation that stores information in a partially analysed form.
从文本构建混合知识表示
智能自然语言处理系统发展的一个重要障碍是缺乏包含世界知识表示的丰富知识库。对于实验系统,通常的做法是手工构建小型知识库;然而,这种方法不能很好地扩展到大型系统。另一种选择是尝试从现有的供人类使用的知识来源中提取所需的信息;然而,利用深入分析构建广泛知识库的尝试取得了有限的成功。在本文中,我们介绍了一些关于替代方法的初步工作,该方法涉及使用浅层处理技术来构建混合知识表示,以部分分析的形式存储信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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